利用异丙醇和基质管从低和高生物量样品中流线型提取核酸和代谢物。

IF 3.8 2区 生物学 Q2 MICROBIOLOGY
Caitriona Brennan, Justin P Shaffer, Pedro Belda-Ferre, Ipsita Mohanty, Yuhan Weng, Kalen Cantrell, Gail Ackermann, Celeste Allaband, MacKenzie Bryant, Sawyer Farmer, Antonio González, Daniel McDonald, Cameron Martino, Michael J Meehan, Gibraan Rahman, Rodolfo A Salido, Tara Schwartz, Se Jin Song, Caitlin Tribelhorn, Helena M Tubb, Pieter C Dorrestein, Rob Knight
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引用次数: 0

摘要

以人群为基础的研究的一个重要方面是在临床环境之外收集样本。这是至关重要的,因为微生物种群是高度动态的,在宿主、环境和时间点上变化很大,仅靠临床样本收集无法完全捕获这种变异性。在家采集样本可以纳入更大、更多样化的参与者群体,考虑到种族、年龄和其他因素的差异。然而,由于样本采集、处理和分析的复杂性,管理大型研究是具有挑战性的。在我们之前的工作基础上,我们证明了单个1 mL条形码的基质管在减少配对DNA和代谢物提取的样品处理时间和孔对孔污染方面的有效性,我们进一步验证了该方法与先前使用相同提取试剂的基准板方法。该验证的重点是来自建筑环境、人类皮肤、人类唾液以及小鼠和人类粪便的样本。重要的是,我们探索了在细胞裂解过程中使用不同大小的头的影响,证明与单一大小的头相比,它可以增强分类恢复。最后,我们评估了95%异丙醇用于室温样品保存的潜力。我们的研究结果表明,在许多情况下,异丙醇的性能与95%乙醇相当,这表明在乙醇不可用的情况下,异丙醇是可行的替代品。除了最大限度地减少污染、减少处理时间、消除样品电镀过程中的人为错误和简化元数据管理之外,基质管方法还可以产生与基于板的方法一致的代谢组学、16S和散弹枪元基因组数据,用于高生物量和低生物量样品。重要性:许多研究已将微生物群与人类和环境健康联系起来,但许多基本问题仍未得到解答。需要具有强大统计能力的大规模研究,以在混杂因素的背景下识别重要的协变量。交叉污染、有限的吞吐量和人为错误已被确定为处理大量样品时的主要挫折。我们提出了一种简化的方法,用于高和低生物量样品的样品加入和代谢物和DNA的提取。这种方法,以前被证明可以显著减少交叉污染,采用自动化友好,每个样品的单个条形码管。此外,我们证明95%异丙醇可作为许多样品类型的有效室温存储解决方案,在乙醇不可用或限制的地区提供替代方案。该方法对该领域具有重要意义,使大规模研究能够以更高的效率产生准确的见解,并在乙醇成本更高或无法获得的情况下扩大可及性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Streamlined extraction of nucleic acids and metabolites from low- and high-biomass samples using isopropanol and matrix tubes.

An essential aspect of population-based research is collecting samples outside of a clinical setting. This is crucial because microbial populations are highly dynamic, varying significantly across hosts, environments, and time points, a variability that clinical sample collection alone cannot fully capture. At-home sample collection enables the inclusion of a larger and more diverse group of participants, accounting for differences in ethnicity, age, and other factors. However, managing large studies is challenging due to the complexities involved in sample acquisition, processing, and analysis. Building on our previous work demonstrating the effectiveness of single 1 mL barcoded, racked Matrix Tubes in reducing sample processing time and well-to-well contamination for paired DNA and metabolite extraction, we further validate this method against a previously benchmarked plate-based approach using the same extraction reagents. This validation focuses on samples from the built environment, human skin, human saliva, and feces from mice and humans. Importantly, we explore the impact of using a mix of bead sizes during bead-beating for cell lysis, demonstrating that it enhances taxonomic recovery compared to a single bead size. Finally, we assess the potential of 95% isopropanol for room-temperature sample preservation. Our results show that isopropanol performs comparably to 95% ethanol in many cases, suggesting it is viable as an alternative when ethanol is unavailable. Beyond minimizing contamination, halving processing time, eliminating human error during sample plating, and streamlining metadata curation, the Matrix tube approach produces metabolomic, 16S, and shotgun metagenomic data consistent with the Plate-based Method for both high- and low-biomass samples.

Importance: Numerous studies have linked the microbiome to human and environmental health, yet many fundamental questions remain unanswered. Large-scale studies with robust statistical power are required to identify important covariates against a background of confounding factors. Cross-contamination, limited throughput, and human error have been identified as major setbacks when processing large numbers of samples. We present a streamlined method for sample accession and extraction of metabolites and DNA for both high- and low-biomass samples. This approach, previously shown to significantly reduce cross-contamination, employs an automation-friendly, single barcoded tube per sample. Additionally, we demonstrate that 95% isopropanol serves as an effective ambient-temperature storage solution for many sample types, providing an alternative in regions where ethanol is unavailable or restricted. This method has significant implications for the field, enabling large-scale studies to generate accurate insights with greater efficiency and expanded accessibility in situations in which ethanol is more costly or otherwise not available.

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来源期刊
Microbiology spectrum
Microbiology spectrum Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
3.20
自引率
5.40%
发文量
1800
期刊介绍: Microbiology Spectrum publishes commissioned review articles on topics in microbiology representing ten content areas: Archaea; Food Microbiology; Bacterial Genetics, Cell Biology, and Physiology; Clinical Microbiology; Environmental Microbiology and Ecology; Eukaryotic Microbes; Genomics, Computational, and Synthetic Microbiology; Immunology; Pathogenesis; and Virology. Reviews are interrelated, with each review linking to other related content. A large board of Microbiology Spectrum editors aids in the development of topics for potential reviews and in the identification of an editor, or editors, who shepherd each collection.
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